RelayCast:延迟容忍网络中可扩展的多播路由

U. Lee, Soon-Young Oh, Kang-Won Lee, M. Gerla
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引用次数: 96

摘要

具有间歇性连接的移动无线网络,通常被称为延迟/中断容忍网络(DTNs),由于其在包括组播在内的各种应用中的适用性,最近受到了广泛的关注。为了克服间歇性连接,DTN路由协议通过让节点携带和转发数据来利用移动性辅助路由。本文主要研究了DTN组播路由的可扩展性问题。正如Gupta和Kumar指出的那样,单播路由是不可伸缩的,最近关于组播路由的报告也表明,使用组播树会导致较差的可伸缩行为。然而,Grossglauser和Tse表明,在延迟容忍应用中,可以使用两跳中继路由来放松单播路由开销,其中源将数据包转发给中继节点,中继节点又通过ldquomobility将数据包传递给目的地,从而实现Theta(1)的完美缩放行为。受此结果的启发,我们寻求使用移动性辅助路由在延迟容忍设置下提高无线组播的吞吐量界限。为此,我们提出了RelayCast,这是一种在组播场景中扩展了两跳中继算法的路由方案。考虑到有ns个源,每个源与nd个随机目的地相关联,我们的结果表明RelayCast可以实现Theta(min(1, n/nsnd))的吞吐量上限。我们还分析了各种网络参数和路由策略(如缓冲区大小,多播接收器之间的多用户多样性和延迟约束)对RelayCast的吞吐量和延迟缩放特性的影响。最后,通过仿真研究验证了分析结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
RelayCast: Scalable multicast routing in Delay Tolerant Networks
Mobile wireless networks with intermittent connectivity, often called delay/disruption tolerant networks (DTNs), have recently received a lot of attention because of their applicability in various applications, including multicasting. To overcome intermittent connectivity, DTN routing protocols utilize mobility-assist routing by letting the nodes carry and forward the data. In this paper, we study the scalability of DTN multicast routing. As Gupta and Kumar showed that unicast routing is not scalable, recent reports on multicast routing also showed that the use of a multicast tree results in a poor scaling behavior. However, Grossglauser and Tse showed that in delay tolerant applications, the unicast routing overhead can be relaxed using the two-hop relay routing where a source forwards packets to relay nodes and the relay nodes in turn deliver packets to the destination via ldquomobility,rdquo thus achieving a perfect scaling behavior of Theta(1). Inspired by this result, we seek to improve the throughput bound of wireless multicast in a delay tolerant setting using mobility-assist routing. To this end, we propose RelayCast, a routing scheme that extends the two-hop relay algorithm in the multicast scenario. Given that there are ns sources each of which is associated with nd random destinations, our results show that RelayCast can achieve the throughput upper bound of Theta(min(1, n/nsnd)). We also analyze the impact of various network parameters and routing strategies (such as buffer size, multi-user diversity among multicast receivers, and delay constraints) on the throughput and delay scaling properties of RelayCast. Finally, we validate our analytical results with a simulation study.
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